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Article

A Thorough Investigation of the Mechanism of theAntagonistic Effect Between Phosphorus and Basic Oxide-Forming Minerals as Flame Retardants of PolymericComposite Coatings

by
Evangelia Mitropoulou
1,2,
Georgios N. Mathioudakis
1,
Amaia Soto Beobide
1,
Athanasios Porfyris
3,
Vassilios Dracopoulos
1,
Kerim Kılınç
4,
Theodosios Chatzinikolaou
5,
Deniz Savci
4,
Cem Gunesoglu
6,
Joannis Kallitsis
1,2 and
George A. Voyiatzis
1,*
1
Foundation for Research and Technology-Hellas (FORTH), Institute of Chemical Engineering Sciences (ICE-HT), Stadiou Str., GR-265 04 Rio-Patras, Greece
2
Department of Chemistry, University of Patras, GR-265 00 Rio-Patras, Greece
3
Laboratory of Polymer Technology, School of Chemical Engineering, National Technical University of Athens, Zographou Campus, GR-157 72 Athens, Greece
4
Polyteks Tekstil, Taşdelen Group, Bursa TR-161 10, Türkiye
5
LKAB Minerals GmbH, 24 P.P. Germanou Str., GR-546 22 Thessaloniki Branch, Greece
6
Textile Engineering Department, Gaziantep University, Gaziantep TR-273 40, Türkiye
*
Author to whom correspondence should be addressed.
Coatings 2025, 15(8), 886; https://doi.org/10.3390/coatings15080886
Submission received: 24 June 2025 / Revised: 23 July 2025 / Accepted: 28 July 2025 / Published: 30 July 2025
(This article belongs to the Special Issue Innovative Flame-Retardant Coatings for High-Performance Materials)

Abstract

Halogenated flame retardants have been amongst the most widely used and effective solutions for enhancing fire resistance. However, their use is currently strictly regulated due to serious health and environmental concerns. In this context, phosphorus-based and mineral flame retardants have emerged as promising alternatives. Despite this, their combined use is neither straightforward nor guaranteed to be effective. This study scrutinizes the interactions between these two classes of flame retardants (FR) through a systematic analysis aimed at elucidating the antagonistic pathways that arise from their coexistence. Specifically, this study focuses on two inorganic fillers, mineral huntite and chemically precipitated magnesium hydroxide, both of which produce basic oxides upon thermal decomposition. These fillers were incorporated into a poly(butylene terephthalate) (PBT) matrix to be utilized as advanced-mattress FR coating fabric and were subjected to a series of flammability tests. The pyrolysis products of the prepared polymeric composite compounds were isolated and thoroughly characterized using a combination of analytical techniques. Thermogravimetric analysis (TGA) and differential thermogravimetric analysis (dTGA) were employed to monitor decomposition behavior, while the char residues collected at different pyrolysis stages were examined spectroscopically, using FTIR-ATR and Raman spectroscopy, to identify their structure and the chemical reactions that led to their formation. X-ray diffraction (XRD) experiments were also conducted to complement the spectroscopic findings in the chemical composition of the resulting char residues and to pinpoint the different species that constitute them. The morphological changes of the char’s structure were monitored by scanning electron microscopy with energy dispersive X-ray spectroscopy (SEM-EDS). Finally, the Limited Oxygen Index (LOI) and UL94 (vertical sample mode) methods were used to assess the relative flammability of the samples, revealing a significant drop in flame retardancy when both types of flame retardants are present. This reduction is attributed to the neutralization of acidic phosphorus species by the basic oxides generated during the decomposition of the basic inorganic fillers, as confirmed by the characterization techniques employed. These findings underscore the challenge of combining organophosphorus with popular flame-retardant classes such as mineral or basic metal flame retardants, offering insight into a key difficulty in formulating next-generation halogen-free flame-retardant composite coatings.
Keywords: huntite; polybutylene terephthalate; magnesium dihydroxide; organophosphorus-mineral antagonism; flame retardant; intumescence huntite; polybutylene terephthalate; magnesium dihydroxide; organophosphorus-mineral antagonism; flame retardant; intumescence

Share and Cite

MDPI and ACS Style

Mitropoulou, E.; Mathioudakis, G.N.; Soto Beobide, A.; Porfyris, A.; Dracopoulos, V.; Kılınç, K.; Chatzinikolaou, T.; Savci, D.; Gunesoglu, C.; Kallitsis, J.; et al. A Thorough Investigation of the Mechanism of theAntagonistic Effect Between Phosphorus and Basic Oxide-Forming Minerals as Flame Retardants of PolymericComposite Coatings. Coatings 2025, 15, 886. https://doi.org/10.3390/coatings15080886

AMA Style

Mitropoulou E, Mathioudakis GN, Soto Beobide A, Porfyris A, Dracopoulos V, Kılınç K, Chatzinikolaou T, Savci D, Gunesoglu C, Kallitsis J, et al. A Thorough Investigation of the Mechanism of theAntagonistic Effect Between Phosphorus and Basic Oxide-Forming Minerals as Flame Retardants of PolymericComposite Coatings. Coatings. 2025; 15(8):886. https://doi.org/10.3390/coatings15080886

Chicago/Turabian Style

Mitropoulou, Evangelia, Georgios N. Mathioudakis, Amaia Soto Beobide, Athanasios Porfyris, Vassilios Dracopoulos, Kerim Kılınç, Theodosios Chatzinikolaou, Deniz Savci, Cem Gunesoglu, Joannis Kallitsis, and et al. 2025. "A Thorough Investigation of the Mechanism of theAntagonistic Effect Between Phosphorus and Basic Oxide-Forming Minerals as Flame Retardants of PolymericComposite Coatings" Coatings 15, no. 8: 886. https://doi.org/10.3390/coatings15080886

APA Style

Mitropoulou, E., Mathioudakis, G. N., Soto Beobide, A., Porfyris, A., Dracopoulos, V., Kılınç, K., Chatzinikolaou, T., Savci, D., Gunesoglu, C., Kallitsis, J., & Voyiatzis, G. A. (2025). A Thorough Investigation of the Mechanism of theAntagonistic Effect Between Phosphorus and Basic Oxide-Forming Minerals as Flame Retardants of PolymericComposite Coatings. Coatings, 15(8), 886. https://doi.org/10.3390/coatings15080886

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